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3D Alginate Hydrogels with Controlled Mechanical Properties for Mammalian Cell Encapsulation

机译:具有受控机械性能的3D海藻酸盐水凝胶,用于哺乳动物细胞封装

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Alginate is one of the most attractive biomaterials for the design of hydrogels for biological and biomedical applications. This biomaterial is composed of varying amounts of two monomers, αL-guluronic acid (G) and β-D-mannuronic acid (M). Recent reports have suggested that depending on the monomeric composition of the hydrogel, stability, mechanical resistance, biodegradability, permeability and gelation might vary significantly. Even though different alginate-based hydrogels have been explored for encapsulation of cells, a correlation between composition and mechanical properties is still missing. Closing this important knowledge gap has been considered crucial for the development of next generation 3D materials capable of resembling the features of extracellular matrices. The purpose of this study was therefore to correlate rheological and mechanical properties of two alginatebased hydrogel formulations. Alginate 1 (Low G 20%-30% of G) and alginate 2 (High G 65%-75% of G) hydrogels were prepared by the diffusion of Calcium ions from a two-layer agarose matrix. The prepared hydrogels were characterized by determining the elastic and Loss moduli at a time sweep of 1Hz. Also, stiffness was determined via AFM. The rheological tests suggest that Low G hydrogels, exhibit higher Storage moduli than High G hydrogels. In line with this result, stiffness is significantly higher for High G hydrogels.
机译:海藻酸盐是设计用于生物和生物医学应用的水凝胶的最有吸引力的生物材料之一。这种生物材料由不同数量的两种单体αL-古洛糖醛酸(G)和β-D-甘露糖醛酸(M)组成。最近的报道表明,取决于水凝胶的单体组成,稳定性,机械抗性,生物降解性,渗透性和凝胶化可能会发生显着变化。即使已经探索了不同的基于藻酸盐的水凝胶来封装细胞,但仍然缺少组成和机械性能之间的相关性。缩小这一重要的知识鸿沟被认为对能够模仿细胞外基质特征的下一代3D材料的开发至关重要。因此,本研究的目的是关联两种基于藻酸盐的水凝胶制剂的流变学和力学性能。通过从两层琼脂糖基质中扩散钙离子来制备藻酸盐1(G的低G 20%-30%)和藻酸盐2(G的高G 65%-75%)水凝胶。通过在1Hz的时间扫描下确定弹性模量和损耗模量来表征所制备的水凝胶。另外,刚度是通过AFM确定的。流变测试表明,低G水凝胶比高G水凝胶具有更高的储能模量。与该结果一致,高G水凝胶的刚度明显更高。

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